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孔螺旋在 Kv11.1 通道失活门控过程中作为结构域运动整合因子发挥动态作用。

Pore helices play a dynamic role as integrators of domain motion during Kv11.1 channel inactivation gating.

机构信息

Molecular Cardiology and Biophysics Division, Victor Chang Cardiac Research Institute, Darlinghurst, New South Wales 2010, Australia.

出版信息

J Biol Chem. 2013 Apr 19;288(16):11482-91. doi: 10.1074/jbc.M113.461442. Epub 2013 Mar 7.

Abstract

Proteins that form ion-selective pores in the membrane of cells are integral to many rapid signaling processes, including regulating the rhythm of the heartbeat. In potassium channels, the selectivity filter is critical for both endowing an exquisite selectivity for potassium ions, as well as for controlling the flow of ions through the pore. Subtle rearrangements in the complex hydrogen-bond network that link the selectivity filter to the surrounding pore helices differentiate conducting (open) from nonconducting (inactivated) conformations of the channel. Recent studies suggest that beyond the selectivity filter, inactivation involves widespread rearrangements of the channel protein. Here, we use rate equilibrium free energy relationship analysis to probe the structural changes that occur during selectivity filter gating in Kv11.1 channels, at near atomic resolution. We show that the pore helix plays a crucial dynamic role as a bidirectional interface during selectivity filter gating. We also define the molecular bases of the energetic coupling between the pore helix and outer helix of the pore domain that occurs early in the transition from open to inactivated states, as well as the coupling between the pore helix and inner helix late in the transition. Our data demonstrate that the pore helices are more than just static structural elements supporting the integrity of the selectivity filter; instead they play a crucial dynamic role during selectivity filter gating.

摘要

在细胞的膜中形成离子选择性孔的蛋白质对于许多快速信号转导过程至关重要,包括调节心跳节律。在钾通道中,选择性过滤器对于赋予钾离子的精细选择性以及控制离子通过孔的流动都至关重要。连接选择性过滤器和周围孔螺旋的复杂氢键网络中的细微重排将通道的传导(开放)构象与非传导(失活)构象区分开来。最近的研究表明,失活除了选择性过滤器之外,还涉及通道蛋白的广泛重排。在这里,我们使用速率平衡自由能关系分析,以近原子分辨率探测 Kv11.1 通道中选择性过滤器门控过程中发生的结构变化。我们表明,在选择性过滤器门控过程中,孔螺旋作为一个双向界面发挥着至关重要的动态作用。我们还定义了在从开放状态向失活状态过渡早期发生的孔螺旋和孔域外螺旋之间以及在过渡后期发生的孔螺旋和内螺旋之间的能量耦合的分子基础。我们的数据表明,孔螺旋不仅仅是支持选择性过滤器完整性的静态结构元件;相反,它们在选择性过滤器门控过程中发挥着至关重要的动态作用。

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